Energy-conservation conditions in the saddle-point approximation for the strong-field ionization of atoms

被引:0
|
作者
Rook, T. [1 ,2 ]
Habibovic, D. [3 ]
Faria, C. Figueira de Morisson [1 ]
机构
[1] UCL, Dept Phys & Astron, Gower St, London WC1E 6BT, England
[2] Univ Oxford, Dept Phys, Clarendon Lab, Parks Rd, Oxford OX1 3PU, England
[3] Univ Sarajevo, Fac Sci, Zmaja Bosne 35, Sarajevo 71000, Bosnia & Herceg
基金
英国工程与自然科学研究理事会;
关键词
ABOVE-THRESHOLD IONIZATION; LASER; DIFFRACTION;
D O I
10.1103/PhysRevA.111.023107
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Orbit-based methods are widespread in strong-field laser-matter interaction. They provide a framework in which photoelectron momentum distributions can be interpreted as the quantum interference between different semiclassical pathways the electron can take on its way to the detector, which brings with it great predictive power. The transition amplitude of an electron going from abound state to a final continuum state is often written as multiple integrals, which can be computed either numerically or by employing the saddle-point method. If one computes the momentum distribution via a saddle-point method, then the obtained distribution is highly dependent on the time window from which the saddle points are selected for inclusion in the "sum over paths." In many cases, this leads to the distributions not even satisfying the basic symmetry requirements and often containing many more oscillations and interference fringes than their numerically integrated counterparts. Using the strong-field approximation, we find that the manual enforcement of the energy-conservation condition on the momentum distribution calculated via the saddle-point method provides a unique momentum distribution which satisfies the symmetry requirements of the system and which is in a good agreement with the numerical results. We illustrate our findings using the example of the Ar atom ionized by a selection of monochromatic and bichromatic linearly polarized fields.
引用
收藏
页数:13
相关论文
共 38 条
  • [1] Modification of the saddle-point equation for strong-field ionization from atomic p orbitals
    Mao, Xiaodan
    Liu, Kunlong
    Ni, Hongcheng
    Wu, Jian
    PHYSICAL REVIEW A, 2025, 111 (03)
  • [2] Strong-field ionization of atoms beyond the dipole approximation
    Habibovic, D.
    Milosevic, D. B.
    PHYSICAL REVIEW A, 2022, 106 (03)
  • [3] Application of the saddle-point method to strong-laser-field ionization
    Jasarevic, A.
    Hasovic, E.
    Kopold, R.
    Becker, W.
    Milosevic, D. B.
    JOURNAL OF PHYSICS A-MATHEMATICAL AND THEORETICAL, 2020, 53 (12)
  • [4] Breakdown of the Dipole Approximation in Strong-Field Ionization
    Ludwig, A.
    Maurer, J.
    Mayer, B. W.
    Phillips, C. R.
    Gallmann, L.
    Keller, U.
    PHYSICAL REVIEW LETTERS, 2014, 113 (24)
  • [5] Modified saddle-point method applied to direct ionization of noble gas atoms
    Jasarevic, A. S.
    Hasovic, E.
    Milosevic, D. B.
    JOURNAL OF PHYSICS A-MATHEMATICAL AND THEORETICAL, 2023, 56 (33)
  • [6] Subcycle Conservation Law in Strong-Field Ionization
    Ma, Yongzhe
    Ni, Hongcheng
    Li, Yang
    He, Feng
    Wu, Jian
    ULTRAFAST SCIENCE, 2024, 4
  • [7] Strong-Field Ionization of Hydrogen Atoms with Quantum Light
    Fang, Yiqi
    Sun, Feng-Xiao
    He, Qiongyi
    Liu, Yunquan
    PHYSICAL REVIEW LETTERS, 2023, 130 (25)
  • [8] Advances in response time of strong-field ionization of atoms
    Che, Jia-Yin
    Chen, Chao
    Li, Wei-Yan
    Li, Wei
    Chen, Yan-Jun
    ACTA PHYSICA SINICA, 2023, 72 (19)
  • [9] Strong-field frustrated double ionization of argon atoms
    Chen, Shi
    Chen, Jing
    Paulus, Gerhard G.
    Kang, HuiPeng
    PHYSICAL REVIEW A, 2020, 102 (02)
  • [10] Strong-field ionization via a high-order Coulomb-corrected strong-field approximation
    Klaiber, Michael
    Danek, Jiri
    Yakaboylu, Enderalp
    Hatsagortsyan, Karen Z.
    Keitel, Christoph H.
    PHYSICAL REVIEW A, 2017, 95 (02)